Thermodynamic performance of hot-carrier solar cells: A quantum transport model
arXiv:2209.09524 · doi:10.1103/PhysRevApplied.19.044038
Abstract
In conventional solar cells, photogenerated carriers lose part of their energy before they can be extracted to make electricity. The aim of hot-carrier solar cells is to extract the carriers before this energy loss, thereby turning more energy into electrical power. This requires extracting the carriers in a nonequilibrium (nonthermal) energy distribution. Here, we investigate the performance of hot-carrier solar cells for such nonequilibrium distributions. We propose a quantum transport model in which each energy-loss process (carrier thermalization, relaxation, and recombination) is simulated by a Büttiker probe. We study charge and heat transport to analyze the hot-carrier solar cell's power output and efficiency, introducing partial efficiencies for different loss processes and the carrier extraction. We show that producing electrical power from a nonequilibrium distribution has the potential to improve the output power and efficiency. Furthermore, in the limit where the distribution is thermal, we prove that a boxcar-shaped transmission for the carrier extraction maximizes the efficiency at any given output power.
16 pages, 9 figures
References in corpus (8)
- Hot carriers in graphene -- fundamentals and applications
- Strong bounds on Onsager coefficients and efficiency for three terminal thermoelectric transport in a magnetic field
- Finding the quantum thermoelectric with maximal efficiency and minimal entropy production at given power output
- Hot electron mediated desorption rates calculated from excited state potential energy surfaces
- Voltage and dephasing probes: a full counting statistics discussion
- Hot-carrier optoelectronic devices based on semiconductor nanowires
- Single-nanowire, low-bandgap hot carrier solar cells with tunable open-circuit voltage
- Enhancement of Hot Carrier Effects and Signatures of Confinement in Terms of Thermalization Power in Quantum Well Solar Cells
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